4.6 Article

Spontaneous Fibrillation of Bovine Serum Albumin at Physiological Temperatures Promoted by Hydrolysis-Prone Ionic Liquids

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LANGMUIR
卷 37, 期 34, 页码 10319-10329

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AMER CHEMICAL SOC
DOI: 10.1021/acs.langmuir.1c01350

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  1. DST, Government of India [SB/FT/CS-057/2013]
  2. CSIR, Govt. of India
  3. UGC

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This study reveals the role of time-dependent hydrolysis of [BF4](-) anion in ionic liquid [BF4] on inducing conformational changes in bovine serum albumin (BSA) and resulting in amyloid fiber formation. The addition of 10% IL in aqueous solution promotes the fibrillation of BSA most effectively among the investigated systems.
This study highlights the role of time-dependent hydrolysis of ionic liquid anion, [BF4](-), of ionic liquid (IL), 1-ethyl- 3- methylimidazolium tetrafluoroborate, [C(2)mim][BF4], which results in ever-changing pH conditions. Such pH changes along with the ionic interactions bring conformational changes in bovine serum albumin (BSA), leading to the formation of amyloid fibers at 37 degrees C without external control of pH or addition of electrolyte. The fibrillation of BSA occurs spontaneously with the addition of IL; however, the highest growth rate has been observed in aqueous solution of 10% IL (v/v %) among investigated systems. Thioflavin T (ThT) fluorescence emission has been employed to monitor the growth and development of beta-sheet content in amyloid fibrils. The structural alterations in BSA have also been investigated using intrinsic fluorescence measurements. Circular dichroism (CD) measurements confirmed the formation of amyloid fibrils. Transmission electron microscopy (TEM) has been explored to establish the morphologies of BSA fibrils at different intervals of time, whereas atomic force microscopy (AFM) has established the helically twisted nature of grown amyloid fibrils. The docking studies have been utilized to understand the insertion of IL ions in different domains of BSA, which along with decreased pH cause the unfolding and growth of BSA into amyloid fibrils. It is expected that the results obtained from this study would help to understand the impact of IL containing [BF4](-) anion on protein stability and aggregation along with providing a new platform to control the formation of amyloid fibrils and other biomaterials driven via ionic interactions and alterations in pH.

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